赖氨酸
化学
细胞生物学
生物
大肠杆菌
遗传密码
细胞培养
生物化学
分子生物学
突变
DNA
遗传学
酿酒酵母
细胞
转染
酵母
计算生物学
大肠杆菌蛋白质类
基因组
编码(集合论)
突变
基因
作者
Shihan Wu,Yinxun Lu,Shunyu Yao,Nanxi Wang
摘要
Lactylation is a recently discovered post-translational modification (PTM) with diverse biological functions. Since its initial identification in 2019 as a regulator of macrophage polarization, histone lactylation has emerged as a pivotal link connecting cellular metabolism to functional regulation. Biochemically, it involves the covalent transfer of a lactyl group to lysine residues, mediated either by lactyltransferases using lactyl-CoA as the acyl donor or by aminoacyl-tRNA synthetases (AARSs) via a lactyl-AMP intermediate. Through these mechanisms, intracellular lactate levels are directly coupled with protein modification and function. Lactylation mediates a range of critical cellular processes, from physiological functions such as gene regulation, DNA repair, metabolic reprogramming, and immune modulation to pathological processes such as tumor progression and metastasis. Despite the identification of numerous lactylation sites by proteomics, achieving site-specific lysine lactylation through mutagenesis remains challenging. To address this, we employ genetic code expansion technology, using a lactyl-lysine-specific aminoacyl-tRNA synthetase (KlacRS) and its cognate tRNA to precisely incorporate lactyl-lysine (Klac) at designated residues. This strategy enables the generation of homogeneously lactylated protein variants for direct functional studies. Here, we describe a streamlined protocol for site-specific protein lactylation, validated in both Escherichia coli (E. coli) and mammalian cells, using human enolase-1 (hENO1) and superfolder GFP (sfGFP) as model systems.
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